DNA nanotechnology has established approaches for designing programmable and precisely controlled nanoscale architectures through specific Watson−Crick base-pairing, molecular plasticity, and intermolecular connectivity. In particular, superior control over DNA origami structures could be beneficial for biomedical applications, including biosensing, in vivo imaging, and drug and gene delivery. However, protecting DNA origami structures in complex biological fluids while preserving their structural characteristics remains a major challenge for enabling these applications. Here, we developed a class of structurally well-defined peptoids to protect DNA origamis in ionic and bioactive conditions and systematically explored the effects of peptoi...
Abstract: DNA is a stable and biocompatible molecule due to its chemical and physical properties. Re...
It was almost four decades ago when the recognition of DNA’s potential use as a programmable, self-a...
In this communication, we show that active enzymes can be delivered into HEK293 cells in vitro when ...
DNA nanotechnology has established approaches for designing programmable and precisely controlled na...
Fully addressable DNA nanostructures, especially DNA origami, possess huge potential to serve as inh...
DNA origamis are fully tailored, programmable, biocompatible and readily functionalizable nanostruct...
The DNA origami technique has proven to have tremendous potential for therapeutic and diagnostic app...
Biologically inspired synthetic materials have led to novel technologies due of their ability to sen...
DNA Nanotechnology allows the synthesis of nanometer sized objects that can be site specifically fun...
In recent years, DNA nanotechnology has emerged into a fast-growing field that offers many applicati...
Lipids are important building blocks in cellular compartments, and therefore their self‐assembly int...
DNA origami is a DNA-based nanotechnology that utilizes programmed combinations of short complementa...
DNA nanotechnology has seen remarkable growth during the past decade. The exceptionally predictable ...
With the introduction of the DNA origami technique, it became possible to rapidly synthesize almost ...
DNA molecules have been used as the building block for the self-assembly of artificial nanostructure...
Abstract: DNA is a stable and biocompatible molecule due to its chemical and physical properties. Re...
It was almost four decades ago when the recognition of DNA’s potential use as a programmable, self-a...
In this communication, we show that active enzymes can be delivered into HEK293 cells in vitro when ...
DNA nanotechnology has established approaches for designing programmable and precisely controlled na...
Fully addressable DNA nanostructures, especially DNA origami, possess huge potential to serve as inh...
DNA origamis are fully tailored, programmable, biocompatible and readily functionalizable nanostruct...
The DNA origami technique has proven to have tremendous potential for therapeutic and diagnostic app...
Biologically inspired synthetic materials have led to novel technologies due of their ability to sen...
DNA Nanotechnology allows the synthesis of nanometer sized objects that can be site specifically fun...
In recent years, DNA nanotechnology has emerged into a fast-growing field that offers many applicati...
Lipids are important building blocks in cellular compartments, and therefore their self‐assembly int...
DNA origami is a DNA-based nanotechnology that utilizes programmed combinations of short complementa...
DNA nanotechnology has seen remarkable growth during the past decade. The exceptionally predictable ...
With the introduction of the DNA origami technique, it became possible to rapidly synthesize almost ...
DNA molecules have been used as the building block for the self-assembly of artificial nanostructure...
Abstract: DNA is a stable and biocompatible molecule due to its chemical and physical properties. Re...
It was almost four decades ago when the recognition of DNA’s potential use as a programmable, self-a...
In this communication, we show that active enzymes can be delivered into HEK293 cells in vitro when ...